An Integrable Model for the Dynamics of Planetary Mean Motion Resonances
arXiv:1909.05264 · doi:10.3847/1538-3881/ab5287
Abstract
I consider the dynamics of mean motion resonances between pairs of co-planar planets and derive a new integrable Hamiltonian model for planets' resonant motion. The new model generalizes previously-derived integrable Hamiltonians for first-order resonances to treat higher-order resonances by exploiting a surprising near-symmetry of the full, non-integrable Hamiltonians of higher-order resonances. Whereas past works have frequently relied on truncated disturbing function expansions to derive integrable approximations to resonant motion, I show that no such expansion is necessary, thus enabling the new model to accurately capture the dynamics of both first- and higher-order resonances for eccentricities up to orbit-crossing. I demonstrate that predictions of the new integrable model agree well with numerical integrations of resonant planet pairs. Finally, I explore the secular evolution of resonant planets' eccentricities. I show that the secular dynamics are governed by conservation of an AMD-like quantity. I also demonstrate that secular frequencies depend on planets' resonant libration amplitude and this generally gives rise to a secular resonance inside the mean motion resonance at large libration amplitudes. Outside of the secular resonance the long-term dynamics are characterized small adiabatic modulations of the resonant motion while inside the secular resonance planets can experience large variations of the resonant trajectory over secular timescales. The integrable model derived in this work can serve as a framework for analyzing the dynamics of planetary MMRs in a wide variety of contexts.
submitted to AAS Journals; code available at github.com/shadden/IntegrableModelforResonances; comments welcome
References in corpus (7)
- Seven temperate terrestrial planets around the nearby ultracool dwarf star TRAPPIST-1
- A resonant chain of four transiting, sub-Neptune planets
- Resonance breaking due to dissipation in planar planetary systems
- Long term dynamics beyond Neptune: secular models to study the regular motions
- Two Jovian planets around the giant star HD202696. A growing population of packed massive planetary pairs around massive stars?
- Two Super-Earths in the 3:2 MMR around KOI-1599
- The origin and 9:7 MMR dynamics of the Kepler-29 system
Cited by in corpus (32)
- Predicting the long-term stability of compact multiplanet systems
- TOI-1136 is a Young, Coplanar, Aligned Planetary System in a Pristine Resonant Chain
- Eccentricity Driven Climate Effects in the Kepler-1649 System
- Fundamental limits from chaos on instability time predictions in compact planetary systems
- How Close are Compact Multi-Planet Systems to the Stability Limit?
- Dynamics and Origins of the Near-Resonant Kepler Planets
- Resonance in the K2-19 system is at odds with its high reported eccentricities
- celmech: A Python package for celestial mechanics
- The Criterion for Chaos in Three-Planet Systems
- An integrable model for first-order three-planet mean motion resonances
- The LHS 1678 System: Two Earth-Sized Transiting Planets and an Astrometric Companion Orbiting an M Dwarf Near the Convective Boundary at 20 pc
- Stability Constrained Characterization of Multiplanet Systems
- The instability mechanism of compact multiplanet systems
- Modeling Radial Velocity Data of Resonant Planets to Infer Migration Histories
- Dissipative Capture of Planets Into First-Order Mean-Motion Resonances
- Detection of separatrices and chaotic seas based on orbit amplitudes
- Stability Constrained Characterization of the 23 Myr-old V1298 Tau System: Do Young Planets Form in Mean Motion Resonance Chains?
- Is the orbital distribution of multiplanet systems influenced by pure three-planet resonances?
- Period Ratio Sculpting Near Second-Order Mean-Motion Resonances
- Normal forms for the Laplace resonance
- Tidally Heated Sub-Neptunes, Refined Planetary Compositions, and Confirmation of a Third Planet in the TOI-1266 System
- Non-perturbative investigation of low eccentricity exterior mean motion resonances
- A Bayesian neural network predicts the dissolution of compact planetary systems
- Secular Dynamics of Compact Three-Planet Systems
- Higher-Order Mean-Motion Resonances Can Form in Type-I Disk Migration
- New results on orbital resonances
- Existence proof of librational invariant tori in an averaged model of HD60532 planetary system
- ASTEP confirmation of a pair of long-period Jupiter-sized planets with extremely low densities transiting TOI-791
- An Adolescent and Near-Resonant Planetary System Near the End of Photoevaporation
- A Criterion for the Onset of Chaos in Compact, Eccentric Multiplanet Systems
- Dynamical analysis of the 5:1 mean-motion resonance of the HD 202206 system
- The Effects of Disk Induced Apsidal Precession on Planets Captured into Mean Motion Resonance